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人体标本植入式光纤麦克风的实验研究。

Experimental study of an implantable fiber-optic microphone on human cadavers.

机构信息

ACMIT Gmbh, Viktor Kaplan Str. 2, Wiener Neustadt 2700, Austria.

ENT specialist, Grünbeckgasse 15, Wiener Neustadt 2700, Austria.

出版信息

Hear Res. 2021 Oct;410:108351. doi: 10.1016/j.heares.2021.108351. Epub 2021 Sep 8.

Abstract

In this paper, we present the results of an experimental study about a novel fiber optical vibrometer, aimed to be used as a totally implantable fiber-optic microphone for hearing aids. The sensor head, implanted inside the human cadaver middle ear, detects the amplitude of the incus vibrations, which are produced by an external acoustical source. The probe beam of coherent vertical cavity surface emitting laser (VCSEL) radiation is directed to the incus and the phase-modulated reflected beam is captured and demodulated. The problem of interferometric fading was solved using two quasi-quadrature signals, passively produced by the 3 × 3 single-mode fiber-optic coupler, processed by a special embedded algorithm. The implanted optoelectronic module works with very low-power consumption, performs real-time signal processing and outputs an analogue signal proportional to the incus vibration. The amplitude of the incus vibrations at different sound pressure levels (SPL) from 40 to 90 dB and at frequencies from 100 Hz to 10 kHz were measured by the implanted system. The system was evaluated on five cadaver skulls. The measured amplitudes were in the range of 1 pm to 5 nm, depending on the subjected skull and the applied sound pressure.

摘要

本文介绍了一种新型光纤振动计的实验研究结果,该振动计旨在用作助听器的全植入光纤麦克风。传感器探头植入人体中耳,检测由外部声源产生的砧骨振动幅度。相干垂直腔面发射激光器(VCSEL)的探测光束被引导到砧骨上,然后捕获和解调相位调制的反射光束。通过使用由 3×3 单模光纤耦合器被动产生的两个准正交信号,解决了干涉衰落问题,该信号由特殊的嵌入式算法处理。植入式光电模块的功耗非常低,可实时进行信号处理,并输出与砧骨振动成正比的模拟信号。植入系统测量了 40 至 90dB 的不同声压级(SPL)和 100Hz 至 10kHz 频率下的砧骨振动幅度。该系统在五个颅骨上进行了评估。测量的幅度范围为 1pm 至 5nm,具体取决于所涉及的颅骨和施加的声压。

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